Anatomy Quiz: Neuromuscular Junction Structure And Mechanism
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Neuromuscular Junction Structure And MechanismQuestion 1 of 15

A muscle biopsy shows neuromuscular junctions with normal presynaptic terminals and acetylcholine release, but the postsynaptic folds appear flattened with reduced surface area. Which functional consequence would most likely result from this structural change?

Decreased acetylcholine synthesis in the motor neuron
Increased acetylcholinesterase concentration in the synaptic cleft
Reduced total number of acetylcholine receptors at the synapse
Impaired calcium-dependent vesicle fusion mechanisms
Enhanced spontaneous acetylcholine release frequency
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Anatomy Quiz

Anatomy Quiz: Neuromuscular Junction Structure And Mechanism

Practice Neuromuscular Junction Structure And Mechanism in Anatomy with focused quiz questions that help you check what you know, review explanations, and build confidence with test-style prompts.

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This quiz focuses on Neuromuscular Junction Structure And Mechanism, giving you a quick way to practice the rules, question types, and explanations that matter most for Anatomy.

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Try each quiz question before looking at the correct answer. Use the explanations to review missed ideas, then come back to similar questions until the pattern feels familiar.

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Question 1

A muscle biopsy shows neuromuscular junctions with normal presynaptic terminals and acetylcholine release, but the postsynaptic folds appear flattened with reduced surface area. Which functional consequence would most likely result from this structural change?

  1. Decreased acetylcholine synthesis in the motor neuron
  2. Increased acetylcholinesterase concentration in the synaptic cleft
  3. Reduced total number of acetylcholine receptors at the synapse (correct answer)
  4. Impaired calcium-dependent vesicle fusion mechanisms
  5. Enhanced spontaneous acetylcholine release frequency
Explanation: When analyzing neuromuscular junction pathology, focus on the structure-function relationship: changes in anatomy directly impact the molecular machinery housed within those structures. Flattened postsynaptic folds with reduced surface area create a critical problem. The postsynaptic membrane normally contains deep invaginations that dramatically increase the available surface area for acetylcholine receptors. When these folds flatten, you lose this expanded surface area, which directly reduces the total number of acetylcholine receptors that can be accommodated at the synapse. Fewer receptors mean weaker muscle responses to the same amount of acetylcholine release. Option A is incorrect because acetylcholine synthesis occurs in the presynaptic motor neuron, which the question states is functioning normally. The structural changes are purely postsynaptic. Option B misidentifies the problem - acetylcholinesterase concentration isn't necessarily affected by fold flattening. The enzyme can still function normally in the synaptic cleft; the issue is receptor availability, not acetylcholine breakdown. Option D focuses on presynaptic mechanisms (calcium-dependent vesicle fusion), but again, the question explicitly states that presynaptic function and acetylcholine release are normal. The pathology is entirely postsynaptic. Remember this key principle: postsynaptic fold architecture is specifically designed to maximize receptor density. Any condition that reduces fold complexity (like myasthenia gravis or certain muscular dystrophies) primarily affects receptor number and distribution, leading to muscle weakness despite normal nerve function.

Question 2

A patient with myasthenia gravis receives edrophonium, an acetylcholinesterase inhibitor, and shows temporary improvement in muscle strength. However, the same patient later receives a high dose of the same drug and experiences muscle weakness. What mechanism best explains this paradoxical response to increased acetylcholinesterase inhibition?

  1. Progressive depletion of presynaptic acetylcholine stores during continued stimulation
  2. Competitive inhibition of acetylcholine receptors by drug metabolites
  3. Receptor desensitization from prolonged acetylcholine exposure in the synaptic cleft (correct answer)
  4. Feedback inhibition of acetylcholine synthesis pathways in motor neurons
  5. Calcium channel inactivation from sustained muscle membrane depolarization
Explanation: When you encounter questions about drug effects at the neuromuscular junction, think about the delicate balance required for normal muscle contraction. Myasthenia gravis involves reduced acetylcholine receptors, so the initial logic of using acetylcholinesterase inhibitors makes sense—more acetylcholine in the synaptic cleft should compensate for fewer receptors. The correct answer is C because acetylcholine receptors, like many membrane receptors, undergo desensitization when exposed to high concentrations of their ligand for extended periods. At therapeutic doses, edrophonium increases acetylcholine levels just enough to improve neuromuscular transmission. However, at high doses, the prolonged exposure to excessive acetylcholine causes the receptors to become less responsive—they essentially "shut down" to protect against overstimulation. This creates the paradoxical weakness despite more available acetylcholine. Option A is incorrect because acetylcholine synthesis and storage aren't typically rate-limiting factors in this timeframe, and presynaptic stores aren't depleted by acetylcholinesterase inhibition. Option B is wrong because edrophonium and its metabolites don't compete with acetylcholine for receptor binding—they specifically target the enzyme that breaks down acetylcholine. Option D is incorrect because there's no significant feedback inhibition of acetylcholine synthesis occurring in this scenario. Remember this pattern: when you see "paradoxical" or "biphasic" drug responses, especially with neurotransmitter systems, consider receptor desensitization or tolerance mechanisms. The dose-response relationship isn't always linear—sometimes more drug creates the opposite effect through compensatory mechanisms.

Question 3

During repetitive high-frequency stimulation of a motor neuron, the amplitude of muscle contractions gradually decreases even though each nerve action potential remains constant. Calcium indicator dyes show that presynaptic calcium levels remain elevated throughout stimulation. What is the most likely explanation for the declining muscle response?

  1. Progressive failure of action potential propagation into the nerve terminal
  2. Gradual depletion of the readily releasable pool of synaptic vesicles (correct answer)
  3. Accumulation of acetylcholine causing receptor desensitization
  4. Decreased calcium sensitivity of the vesicle fusion machinery
  5. Competitive inhibition by endogenous acetylcholinesterase upregulation
Explanation: When you encounter questions about synaptic fatigue during high-frequency stimulation, focus on the sequence of events in neurotransmitter release and what becomes the limiting factor when demand is high. The key insight here is understanding synaptic vesicle pools. Nerve terminals contain a "readily releasable pool" of vesicles docked at active zones, ready for immediate calcium-triggered fusion. During high-frequency stimulation, these vesicles are consumed faster than they can be replenished from the reserve pool. Since calcium levels remain elevated and each action potential is normal, the problem isn't with the trigger for release—it's with having fewer vesicles available to release. This progressive depletion explains why muscle contractions weaken despite continued stimulation. Let's examine why the other options don't fit: (A) Progressive failure of action potential propagation contradicts the given information that each nerve action potential remains constant. (C) Acetylcholine accumulation causing receptor desensitization would be unlikely since acetylcholinesterase rapidly breaks down ACh in the synaptic cleft. (D) Decreased calcium sensitivity of fusion machinery doesn't align with the evidence that calcium levels stay elevated—if the machinery were becoming less sensitive, you'd expect to see calcium levels rise even higher as the system tries to compensate. Remember this pattern: when synaptic transmission fails during repetitive stimulation but the electrical signals remain intact, think about vesicle depletion. This is a classic example of how even normal physiological processes have rate-limiting steps that become apparent under stress.

Question 4

A research study compares neuromuscular junctions in fast-twitch versus slow-twitch muscle fibers. The data shows that fast-twitch junctions have more complex postsynaptic folding and higher acetylcholine receptor density. What functional advantage does this structural difference most likely provide?

  1. Increased acetylcholine synthesis capacity in fast-twitch motor neurons
  2. Enhanced calcium buffering capability in fast-twitch muscle fibers
  3. Greater safety factor for action potential generation during rapid firing (correct answer)
  4. Reduced acetylcholinesterase activity to prolong synaptic responses
  5. Improved metabolic efficiency during sustained low-frequency activation
Explanation: When you encounter questions about neuromuscular junction structure, think about how anatomy serves function. The neuromuscular junction must reliably convert nerve impulses into muscle contractions, and different muscle fiber types have different demands. The increased postsynaptic folding and higher acetylcholine receptor density in fast-twitch fibers directly supports their need for rapid, forceful contractions. More folding creates greater surface area, and higher receptor density means more acetylcholine binding sites. Together, these features ensure that even during rapid, repeated nerve firing, enough acetylcholine receptors are activated to consistently trigger muscle action potentials. This is called having a greater "safety factor" - a larger margin above the threshold needed for reliable signal transmission. Fast-twitch fibers need this because they're called upon for quick, powerful movements where signal failure would be problematic. Option A is incorrect because acetylcholine synthesis occurs in the motor neuron, not at the postsynaptic membrane where these structural differences exist. Option B confuses the issue - while calcium is crucial for muscle contraction, the described structural changes don't affect calcium buffering, which occurs in the sarcoplasmic reticulum. Option D is backwards; reduced acetylcholinesterase would actually impair rapid firing by allowing acetylcholine to linger and interfere with subsequent signals. Remember that structure-function questions often test whether you can connect anatomical features to physiological demands. Fast-twitch fibers need speed and reliability, so their junctions are built for robust, rapid signaling.

Question 5

A muscle fiber is treated with α-bungarotoxin, which irreversibly binds to acetylcholine receptors. Initially, the muscle shows complete paralysis. After 48 hours, some muscle function returns despite continued toxin presence. What mechanism most likely accounts for this recovery?

  1. Enzymatic degradation of the α-bungarotoxin by muscle proteases
  2. Synthesis and insertion of new acetylcholine receptors into the membrane (correct answer)
  3. Development of alternative neurotransmitter pathways using glutamate
  4. Conformational change in existing receptors that displaces the toxin
  5. Upregulation of acetylcholinesterase to overcome receptor blockade
Explanation: When you encounter questions about neuromuscular toxins and recovery, focus on the cellular mechanisms that can restore function over time. α-bungarotoxin is a snake venom component that binds irreversibly to nicotinic acetylcholine receptors at the neuromuscular junction, initially causing complete paralysis by blocking nerve-to-muscle communication. The recovery after 48 hours occurs because muscle cells synthesize new acetylcholine receptors and insert them into the membrane. Since the toxin binds irreversibly, the original blocked receptors remain non-functional, but newly manufactured receptors provide fresh binding sites for acetylcholine. This process takes time—typically 24-48 hours—which matches the timeline described in the question. Looking at the incorrect options: (A) is wrong because α-bungarotoxin is extremely stable and resistant to enzymatic breakdown—that's why it's used experimentally. (C) is incorrect because the neuromuscular junction specifically uses acetylcholine, not glutamate, and motor neurons don't switch neurotransmitters. (D) is false because α-bungarotoxin binding is irreversible; conformational changes cannot displace it once bound. The key insight here is understanding "irreversible" binding—it means the toxin-receptor complex cannot be undone, so recovery must involve making new receptors rather than freeing existing ones. Remember that cells continuously turn over membrane proteins, and this natural process becomes the mechanism for recovery from irreversible toxins. Watch for this pattern in questions about irreversible inhibitors or toxins.

Question 6

An experimental preparation shows that miniature end-plate potentials (MEPPs) occur at normal frequency and amplitude, but evoked end-plate potentials are completely absent when the motor nerve is stimulated. Which component of neuromuscular transmission is most likely impaired?

  1. Spontaneous acetylcholine vesicle fusion mechanisms
  2. Postsynaptic acetylcholine receptor function and density
  3. Action potential-calcium influx coupling in the presynaptic terminal (correct answer)
  4. Acetylcholinesterase enzyme activity in the synaptic cleft
  5. Acetylcholine uptake and packaging into synaptic vesicles
Explanation: When analyzing neuromuscular transmission disorders, you need to distinguish between spontaneous and evoked release of acetylcholine. This question tests your understanding of the different mechanisms underlying these two processes. The key observation here is that miniature end-plate potentials (MEPPs) are normal while evoked end-plate potentials are completely absent. MEPPs represent spontaneous, random fusion of individual acetylcholine vesicles that occurs independently of nerve stimulation. Evoked potentials, however, require coordinated, massive vesicle release triggered by action potentials arriving at the presynaptic terminal. The correct answer is C because evoked release depends critically on voltage-gated calcium channels opening when an action potential depolarizes the presynaptic terminal. Calcium influx triggers synchronized vesicle fusion. If this coupling mechanism is impaired, spontaneous release continues normally (explaining normal MEPPs), but stimulation cannot trigger the coordinated release needed for evoked potentials. Option A is wrong because spontaneous vesicle fusion is clearly functioning normally, as evidenced by normal MEPPs. Option B is incorrect because if postsynaptic receptors were impaired, both MEPPs and evoked potentials would be reduced or absent since both depend on acetylcholine binding to these same receptors. Option D is wrong because acetylcholinesterase problems would affect the duration or termination of both types of potentials, not selectively eliminate evoked responses. Remember: When spontaneous activity is preserved but evoked activity is lost, suspect a problem with stimulus-secretion coupling, specifically the calcium-dependent mechanism that converts electrical signals into neurotransmitter release.

Question 7

Use the table above to answer the question. A patient shows the electrophysiological findings listed for their neuromuscular junctions. Based on these results, which pathological process is most consistent with the observed pattern?

  1. Presynaptic acetylcholine synthesis deficiency with normal vesicle machinery
  2. Postsynaptic acetylcholine receptor loss with intact presynaptic function (correct answer)
  3. Voltage-gated calcium channel dysfunction in motor nerve terminals
  4. Excessive acetylcholinesterase activity causing rapid ACh degradation
  5. Defective synaptic vesicle docking and priming mechanisms
Explanation: Normal MEPP frequency indicates intact vesicle pools and spontaneous release. Reduced MEPP amplitude and absent evoked EPPs point to postsynaptic receptor loss - fewer receptors mean smaller responses to the same ACh release. Choice A is wrong because ACh synthesis defects would reduce MEPP frequency. Choice C is incorrect because calcium channel problems would eliminate MEPPs entirely. Choice D is wrong because excessive AChE would reduce MEPP duration, not eliminate evoked responses selectively. Choice E is incorrect because docking defects would reduce MEPP frequency.

Question 8

A patient receives a muscle relaxant that blocks voltage-gated calcium channels specifically in the presynaptic terminal of motor neurons. During an attempted muscle contraction, action potentials still propagate normally along the motor neuron axon and reach the neuromuscular junction. What would be the most likely outcome at the muscle fiber?

  1. Normal muscle contraction occurs because calcium channels in the muscle fiber remain functional
  2. No muscle contraction occurs because acetylcholine release requires calcium influx into the presynaptic terminal (correct answer)
  3. Weak muscle contraction occurs because some acetylcholine is still released through calcium-independent mechanisms
  4. Sustained muscle contraction occurs because acetylcholine breakdown is impaired when calcium channels are blocked
Explanation: Acetylcholine release from the presynaptic terminal requires calcium influx through voltage-gated calcium channels. When these channels are blocked, calcium cannot enter the terminal, preventing vesicle fusion and neurotransmitter release, resulting in no muscle contraction despite normal action potential propagation. Choice A is incorrect because muscle fiber calcium channels don't affect neurotransmitter release. Choice C is incorrect because acetylcholine release is entirely calcium-dependent. Choice D is incorrect because calcium channel blockade doesn't affect acetylcholinesterase function.

Question 9

During normal neuromuscular transmission, the end plate potential (EPP) typically reaches +30 mV, well above the threshold needed to trigger an action potential in the muscle fiber. If a toxin reduces acetylcholine release by exactly 60%, what would most likely happen to muscle contraction, and why?

  1. Muscle contraction would be reduced to 40% of normal strength because the EPP amplitude directly determines contraction force
  2. Normal muscle contraction would still occur because the reduced EPP would likely still exceed the threshold for action potential generation (correct answer)
  3. No muscle contraction would occur because any reduction in acetylcholine release prevents threshold from being reached
  4. Muscle contraction would be delayed but normal in strength because fewer acetylcholine molecules take longer to bind receptors
Explanation: Normal neuromuscular transmission has a large safety margin - the EPP typically reaches +30 mV when only about -15 mV is needed to reach threshold. A 60% reduction would still likely produce an EPP above threshold, triggering a normal action potential and full contraction. Choice A is incorrect because muscle contraction follows an all-or-nothing principle once threshold is reached. Choice C is incorrect because the safety margin allows for significant reductions in ACh release while still reaching threshold. Choice D is incorrect because the timing of receptor binding doesn't significantly delay the response when threshold is reached.

Question 10

A research team is investigating the molecular basis of muscle weakness in a patient with suspected myasthenia gravis. They perform electrophysiological recordings at the neuromuscular junction and find that while acetylcholine release appears normal, the amplitude of end plate potentials progressively decreases with repeated stimulation. Electron microscopy reveals normal synaptic structure, and acetylcholinesterase activity is within normal limits.

Given these findings, what is the most likely underlying cause of the progressive decrease in end plate potential amplitude during repeated stimulation?

  1. Presynaptic vesicle depletion occurs more rapidly than normal due to impaired vesicle recycling mechanisms
  2. Postsynaptic membrane becomes progressively less permeable to sodium during repeated receptor activation
  3. Acetylcholine synthesis is impaired, leading to reduced neurotransmitter content in each released vesicle
  4. Autoantibodies are blocking or destroying nicotinic acetylcholine receptors on the muscle fiber membrane (correct answer)
Explanation: When you encounter questions about neuromuscular junction disorders, focus on distinguishing between presynaptic (nerve terminal) and postsynaptic (muscle membrane) problems. The key clues here are normal acetylcholine release but progressive weakening with repeated stimulation - this pattern points directly to postsynaptic receptor issues. The findings perfectly match myasthenia gravis pathophysiology. Since acetylcholine release is normal but end plate potentials progressively weaken, the problem must be at the receptor level. In myasthenia gravis, autoantibodies bind to nicotinic acetylcholine receptors, either blocking them directly or triggering their destruction through complement activation. With fewer functional receptors available, each nerve impulse produces a progressively weaker muscle response as the remaining receptors become occupied and the muscle fatigues quickly. Option A is incorrect because the passage states acetylcholine release appears normal, ruling out presynaptic vesicle problems. Option B misrepresents receptor physiology - sodium permeability doesn't progressively decrease during normal receptor activation. Option C contradicts the finding of normal acetylcholine release, and reduced vesicle content would show up as abnormal release patterns. Option D correctly identifies the autoantibody mechanism that reduces functional receptor density on the postsynaptic membrane, explaining why normal acetylcholine release produces progressively weaker responses. Remember this pattern: normal presynaptic function + progressive postsynaptic weakness + intact structural anatomy = receptor-level autoimmune disease. On anatomy and physiology exams, myasthenia gravis questions often test whether you can localize the defect to the correct side of the synapse based on the clinical presentation.

Question 11

An experimental preparation allows researchers to independently control the presynaptic membrane potential and calcium concentration at a motor neuron terminal. When they depolarize the presynaptic membrane to +20 mV but prevent any increase in intracellular calcium concentration, what would happen to acetylcholine release?

  1. Normal acetylcholine release occurs because depolarization to +20 mV is sufficient to trigger exocytosis
  2. Enhanced acetylcholine release occurs because strong depolarization compensates for the lack of calcium increase
  3. Reduced acetylcholine release occurs because some vesicles can fuse without calcium but most require it
  4. No acetylcholine release occurs because calcium influx is the direct trigger for vesicle fusion with the membrane (correct answer)
Explanation: When you encounter questions about neurotransmitter release, focus on the precise molecular mechanisms of synaptic transmission. While membrane depolarization is necessary for neurotransmitter release, it's not sufficient by itself. Here's the critical sequence: depolarization opens voltage-gated calcium channels, calcium ions flow into the presynaptic terminal, and calcium directly binds to synaptotagmin proteins on synaptic vesicles. This calcium-protein interaction is what actually triggers the SNARE complex to pull vesicles to the membrane and initiate exocytosis. Without calcium, the vesicles remain docked but cannot fuse with the presynaptic membrane. In this experimental scenario, even though the membrane is depolarized to +20 mV (which would normally open calcium channels), the researchers prevented any calcium increase. Since calcium binding to synaptotagmin is the direct molecular trigger for vesicle fusion, no acetylcholine can be released. This makes answer D correct. Answer A is wrong because depolarization alone cannot trigger exocytosis—it merely opens the calcium channels. Answer B incorrectly suggests that strong depolarization can bypass the calcium requirement, but no amount of depolarization can substitute for the specific calcium-synaptotagmin interaction. Answer C is incorrect because vesicle fusion is absolutely dependent on calcium; there's no calcium-independent pathway for neurotransmitter release at chemical synapses. Remember this principle: calcium is the universal trigger for exocytosis in neurons. Depolarization is just the first step that allows calcium entry—without calcium, the cascade stops there.

Question 12

A pharmaceutical company is testing a new compound that increases the number of acetylcholine-containing vesicles in motor neuron terminals but does not affect calcium channel function or vesicle fusion machinery. During repetitive high-frequency stimulation of the motor neuron, how would this compound most likely affect muscle contraction compared to control conditions?

  1. Initial contractions would be stronger, but the compound would have little effect on performance during prolonged stimulation
  2. Muscle contractions would be consistently stronger throughout the stimulation period due to increased acetylcholine availability
  3. Initial contractions would be normal, but muscle performance would be better maintained during prolonged high-frequency stimulation (correct answer)
  4. No significant change would occur because vesicle number does not limit normal neuromuscular transmission
Explanation: Under normal conditions, the first few stimuli release ACh effectively, but high-frequency stimulation can deplete readily releasable vesicles, leading to reduced ACh release and muscle fatigue. Increasing vesicle number provides a larger reserve pool, maintaining transmission during prolonged activity. Choice A is incorrect because initial contractions depend on readily releasable vesicles, not total number. Choice B overstates the effect since normal transmission already exceeds threshold. Choice D is incorrect because vesicle depletion is a known limitation during intense activity.

Question 13

A genetic mutation causes a deficiency in acetylcholinesterase at the neuromuscular junction. During a single motor neuron stimulus, acetylcholine is released normally, but its breakdown is severely impaired. What would be the most likely effect on the muscle fiber's electrical activity immediately following this stimulus?

  1. A normal action potential followed by immediate return to resting potential as acetylcholine diffuses away from receptors
  2. No action potential because acetylcholinesterase is required for acetylcholine to bind effectively to its receptors
  3. A normal action potential followed by prolonged depolarization as acetylcholine continues to bind receptors (correct answer)
  4. Multiple action potentials because acetylcholinesterase breakdown products are needed to close sodium channels
Explanation: Without adequate acetylcholinesterase, acetylcholine remains bound to nicotinic receptors much longer than normal, keeping sodium/potassium channels open and maintaining depolarization. The initial action potential occurs normally, but the muscle fiber cannot return to resting potential quickly. Choice A is incorrect because diffusion alone is too slow to terminate the signal. Choice B is incorrect because acetylcholinesterase is not required for ACh-receptor binding. Choice D is incorrect because multiple action potentials cannot occur during the prolonged depolarization due to sodium channel inactivation.

Question 14

An electrophysiology experiment measures the voltage across the muscle fiber membrane at the motor end plate region. Under normal conditions, the end plate potential peaks at +20 mV. When the experiment is repeated in a solution containing 50% of the normal sodium concentration, the end plate potential peaks at +5 mV. What accounts for this difference?

  1. Reduced sodium concentration decreases the electrochemical driving force for sodium entry through nicotinic receptor channels (correct answer)
  2. Lower external sodium concentration causes nicotinic receptors to become less sensitive to acetylcholine binding
  3. Decreased sodium concentration impairs acetylcholine release from the presynaptic terminal
  4. Reduced sodium availability causes fewer nicotinic receptor channels to open in response to acetylcholine
Explanation: The end plate potential amplitude depends on the electrochemical gradient for sodium. With reduced external sodium concentration, the driving force for sodium entry through open nicotinic receptor channels is decreased, resulting in smaller current flow and reduced EPP amplitude. Choice B is incorrect because receptor sensitivity to ACh is not affected by external sodium. Choice C is incorrect because ACh release depends on calcium, not sodium. Choice D is incorrect because the number of channels opening depends on ACh concentration and receptor binding, not external sodium levels.

Question 15

An experimental drug selectively binds to nicotinic acetylcholine receptors at the motor end plate but does not allow sodium or potassium movement through the channel. If this drug is applied while a motor neuron is repeatedly stimulated, what would happen to the muscle fiber's resting membrane potential and its ability to contract?

  1. Resting potential remains at -70 mV and no contraction occurs because the drug prevents normal receptor activation (correct answer)
  2. Resting potential becomes more negative than -70 mV and no contraction occurs because potassium efflux is blocked
  3. Resting potential becomes less negative than -70 mV and weak contractions occur because some sodium can still enter
  4. Resting potential remains at -70 mV but sustained contraction occurs because the drug prolongs receptor activation
Explanation: The drug acts as a competitive antagonist, binding to nicotinic receptors without opening ion channels. This prevents acetylcholine from binding and activating the receptors, so no end plate potential develops and no muscle contraction occurs. The resting membrane potential remains unchanged because the drug doesn't affect other ion channels responsible for maintaining resting potential. Choice B is incorrect because blocking one type of channel doesn't make the membrane more negative. Choice C is incorrect because the drug completely blocks receptor function. Choice D is incorrect because receptor binding without channel opening cannot cause contraction.